MAIA: Multi-Agent Intent Articulation for Requirement Discovery in Art Commissions

📅 2026-09-10
📈 Citations: 0
Influential: 0
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🤖 AI Summary
论文提出MAIA系统,通过多代理苏格拉底式询问解决艺术委托中需求发现阶段的表达瓶颈问题。
📝 Abstract
In bespoke art commissions, laypeople know what they feel but lack the words to specify it: one participant wanted a laid-off truck driver depicted as "a ghost in his own machine" but left the medium, scale, and palette unsaid. We frame this as an articulation bottleneck at an under-served upstream stage: requirement discovery, which precedes any artist or image generator and forces the commissioner to constitute intent in the first place. We present MAIA (Multi-Agent Intent Articulation), a multi-agent system that scaffolds this stage through Socratic inquiry under a "Verification over Invention" rule, turning vague affect into a text-only brief of visual terms the user verifies. In a within-subjects study (N = 16), the full configuration produced a large, significant gain in Cognitive Support over a minimal baseline (r = 0.96, p_FDR = 0.015; LMM p_FDR < 0.001). Thematic analysis traces the same mechanism, and a validator gate structurally blocks unratified content. A complementary blind review by three professional concept artists on a sampled set of briefs corroborates this improvement from the artist's side: AI rewriting improved visual completeness and executability in all eight sampled tasks (task-level Wilcoxon p = 0.008; FDR q = 0.010), with directionally larger gains under MAIA than under the baseline (underpowered, d = 1.4-2.6).
Problem

Research questions and friction points this paper is trying to address.

bespoke art commissions
articulation bottleneck
requirement discovery
intent articulation
Innovation

Methods, ideas, or system contributions that make the work stand out.

Multi-Agent System
Requirement Discovery
Socratic Inquiry
Cognitive Support
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